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    المصدر: Indian Journal of Animal Research 57(6):806-810. 2023

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    المصدر: Brazilian Journal of Science; Vol. 3 No. 8 (2024): Brazilian Journal of Science; 43-51 ; Brazilian Journal of Science; Vol. 3 Núm. 8 (2024): Brazilian Journal of Science; 43-51 ; Brazilian Journal of Science; v. 3 n. 8 (2024): Brazilian Journal of Science; 43-51 ; 2764-3417

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    مصطلحات موضوعية: heat stress, poultry, genetics, naked neck

    Relation: UID/AGR/04129; info:eu-repo/grantAgreement/FCT//UI%2FBD%2F151166%2F2021/PT; https://www.mdpi.com/journal/animals; Fernandes, E.; Raymundo, A.; Martins, L.L.; Lordelo, M.; de Almeida, A.M. The naked neck gene in the domestic chicken: A genetic strategy to mitigate the impact of heat stress in poultry production—A review. Animals 2023, 13, 1007.; http://hdl.handle.net/10400.5/30294

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    المصدر: Περιοδικό της Ελληνικής Κτηνιατρικής Εταιρείας; Τόμ. 73 Αρ. 4 (2022); 4873-4880 ; Journal of the Hellenic Veterinary Medical Society; Vol. 73 No. 4 (2022); 4873-4880 ; 2585-3724 ; 1792-2720

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    المصدر: Journal MVZ Cordoba; Vol. 27 No. 1 (2022): Journal MVZ Cordoba; 27(1) January-April 2022; e2599 ; Revista MVZ Córdoba; Vol. 27 Núm. 1 (2022): Revista MVZ Córdoba; 27(1) Enero-abril 2022; e2599 ; 1909-0544 ; 0122-0268 ; 10.21897/rmvz.v27.n1.2022

    وصف الملف: application/pdf; application/zip; text/xml; audio/mpeg

    Relation: https://revistamvz.unicordoba.edu.co/article/view/e2599/3675; https://revistamvz.unicordoba.edu.co/article/view/e2599/3676; https://revistamvz.unicordoba.edu.co/article/view/e2599/3747; https://revistamvz.unicordoba.edu.co/article/view/e2599/3749; https://revistamvz.unicordoba.edu.co/article/view/e2599/3748; https://revistamvz.unicordoba.edu.co/article/view/e2599/3750; https://revistamvz.unicordoba.edu.co/article/view/e2599/3677; https://revistamvz.unicordoba.edu.co/article/view/e2599/3678; https://revistamvz.unicordoba.edu.co/article/view/e2599/3679; https://revistamvz.unicordoba.edu.co/article/view/e2599/3680; 1. Instituto Colombiano Agropecuario - ICA. Censo Aviar en Colombia [Internet]. 2021 [Citado 8 de septiembre de 2021]. Disponible en: https://www.ica.gov.co/areas/pecuaria/servicios/epidemiologia-veterinaria/censos-2016/censo-2018; 2. Nik-Hassan N, Awang A, Rahman M. Parasitic burden and Its relation with the body weight of free range chicken in oil palm dominated Sandakan District of Malaysian Borneo. Int J Livest Res. 2015; 5(9):10–9. http://10.5455/ijlr.20150909073638.; 3. Moula N, Philippe FX, Antoine-Moussiaux N, Leroy P, Michaux C. Estimation of inbreeding rates and extinction risk of forty one Belgian chicken breeds in 2005 and 2010. Arch Zootec. 2014; 63(242):389–92. https://doi.org/10.21071/az.v63i242.556; 4. Zaragoza ML, Rodriguez J, Hernandez J, Perezgrovas GR, Martínez B, Mendez J. Characterization of hens Batsi Alak in the highlands of southeast Mexico. Arch Zootec. 2013; 62(239):321–922. https://doi.org/10.21071/az.v62i239.638; 5. Valencia N. La gallina criolla colombiana [Internet]. Universidad Nacional de Colombia, Sede Palmira. Palmira. UNIMEDIOS: Colombia; 2011. https://repositorio.unal.edu.co/handle/unal/51981; 6. Jáuregui R, Flores H, Vásquez L, Oliva M. Caracterización morfométrica de la gallina de cuello desnudo (Gallus domesticus nudicollis) en la región ch’ortí de Chiquimula, Guatemala. Cienc Tecnol Salud. 2015; 2(1):5–12. https://doi.org/10.36829/63CTS.v2i1.42; 7. Desta TT. The genetic basis and robustness of naked neck mutation in chicken. Trop Anim Health Prod. 2021; 53(1):95. https://doi.org/10.1007/s11250-020-02505-1; 8. Toalombo Vargas PA, Navas González FJ, Landi V, León Jurado JM, Delgado Bermejo JV. Sexual dimorphism and breed characterization of creole hens through Bbometric canonical discriminant analysis across Ecuadorian agroecological areas. Animals. 2020; 10(1):32. https://doi.org/10.3390/ani10010032; 9. Soto I, Zavala G, Cano H, López J. Análisis de dos poblaciones de gallinas criollas (Gallus domesticus) utilizando RAPD´s como marcadores moleculares. Rev Mex Cienc Pecu. 2002; 40(3): 275-283. https://cienciaspecuarias.inifap.gob.mx/index.php/Pecuarias/article/view/1295; 11. Melesse A, Negesse T. Phenotypic and morphological characterization of indigenous chicken populations in southern region of Ethiopia. Anim Genet Resour. 2011; 49:19–31. https://doi.org/10.1017/S2078633611000099; 12. Montes D, De la Ossa J, Hernandez D. Morphological characterization of the creole backyard chickens of the Subregion sabana department of Sucre (Colombia). Rev MVZ Cordoba. 2019; 24(2):7218–7224. https://doi.org/10.21897/rmvz.1646; 13. FAO. Phenotypic characterization of animal genetic resources. Roma: FAO Animal Production and Health FAO; 2012. http://www.fao.org/3/i2686e/i2686e00.pdf; 14. Lázaro G, Hernandez Z, Vargas L, Martínez L, Pérez A. Uso de caracteres morfométricos en la clasificación de gallinas locales. AICA 2012; 2:109–17. http://www.uco.es/conbiand/aica/templatemo_110_lin_photo/articulos/2012/Trabajo049_AICA2012.pdf; 15. Villacís G, Escudero G, Cueva F, Luzuriaga A. Características morfométricas de las gallinas criollas de comunidades rurales del sur del Ecuador. Rev Inv Vet Perú. 2016; 27(2):218–24. https://doi.org/10.15381/rivep.v27i2.11639; 16. Chincoya HL, Haro JGH, Salas MPJ, Varela AS, Garay AH. Tipología de gallinas criollas en valles centrales Oaxaca con base en descriptores morfométricos. Agric Soc Desarro. 2018; 15(4):585–593. https://doi.org/10.22231/asyd.v15i4.901; 17. Peakall R, Smouse PE. GenAlEx 6.5: Genetic Analysis in Excel. Population genetic software for teaching and research-an Update. Bioinformatics. 2012; 28(19):2537–2539. https://doi.org/10.1093/bioinformatics/bts460; 18. R: The R Project for Statistical Computing [Internet]. [citado 8 de septiembre de 2021]. Disponible en: https://www.r-project.org/; 19. Bembide C, Touko BAH, Manjeli Y, Tiambo CK. Caractérisation morphobiométrique de la poule locale en Centrafrique. Anim Genet Resour 2013; 53:33–44. https://doi.org/10.1017/S2078633612000525; 20. Brown MM, Alenyorege B, Teye GA, Roessler R. Phenotypic diversity, major genes and production potential of local chickens and guinea fowl in Tamale, northern Ghana. Asian-Australas. 2017; 30(10):1372–1381. https://doi.org/10.5713/ajas.17.0145; 21. Habimana R, Ngeno K, Mahoro J, Ntawubizi M, Shumbusho F, Manzi M, et al. Morphobiometrical characteristics of indigenous chicken ecotype populations in Rwanda. Trop Anim Health Prod. 2020; 53(1):24. https://doi.org/10.1007/s11250-020-02475-4; 22. Galíndez R, Lucas G, Colmenares O. Diversidad fenotípica de aves criollas de postura basada en caracteres zoométricos. Rev Univ Zulia. 2020; 11(29):412–427. https://doi.org/10.46925//rdluz.29.25; 23. Guni F, Katule A. Characterization of local chickens in selected districts of the Southern Highlands of Tanzania: I. Qualitative characters. Livest Res Rural Dev 2013; 25:153. http://www.lrrd.org/lrrd25/9/guni25153.htm; 24. Hassan OM, Tiambo CK, Issa S, Hima K, Adamou MLI, Bakasso Y, et al. Morpho-biometric characterization of local chicken population in Niger. GSC Biol Pharm. 2020; 13(2):211–24. https://doi.org/10.30574/gscbps.2020.13.2.0369; 25. Yihun A, Kirmani MA, Molla M. Phenotypic Characterization of Indigenous Chicken Ecotypes in Awi Zone, Ethiopia. Ecol Evol Biol. 2020; 5(4):131. http://10.11648/j.eeb.20200504.13; 26. Strillacci MG, Vega-Murillo VE, Román-Ponce SI, López FJR, Cozzi MC, Gorla E, et al. Looking at genetic structure and selection signatures of the Mexican chicken population using single nucleotide polymorphism markers. Poult Sci. 2018; 97(3):791–802. https://doi.org/10.3382/ps/pex374; 27. Vega M, Roman S, Duran M, Velez I, Cabrera E, Cantú A, et al. Evaluación morfológica de gallinas de traspatio mexicanas (Gallus gallus domesticus). Rev Mex Cienc Pecu. 2018; 9(2):362–375. http://10.22319/rmcp.v9i2.4484; 28. Flórez JM, Hernández M, Bustamante M, Vergara O. Caracterización morfoestructural de tres poblaciones de Ovino de Pelo Criollo Colombiano “OPC.” Arch Zootec. 2018; 67(259):340–8. https://doi.org/10.21071/az.v67i259.3789; 29. Fayeye T, Ayorinde K, Ojo V, Adesina O. Frequency and influence of some major genes on body weight and body size parameters of Nigerian local chickens. Livest Res Rural Dev. 2006; 18:37. http://www.lrrd.org/lrrd18/3/faye18037.htm; 30. Dahloum L, Moula N, Halbouche M, Mignon-Grasteau S. Phenotypic characterization of the indigenous chickens (Gallus gallus) in the northwest of Algeria. Arch Anim Breed. 2016; 59(1):79–90. https://doi.org/10.5194/aab-59-79-2016; 31. Oguntunji AO, Ayandiji A, Kehinde AL. Awareness on genetic ‘Erosion\’ of some economic genes in Nigerian local chicken. Afr J Livest Ext. 2007; 5:32–36. https://www.ajol.info/index.php/ajlex/article/view/179; 32. Nweke-okorocha GO, Chineke CA, Joachim CO. Effects of sex, polydactylism and rearing systems on serum biochemical indices of Fulani ecotype chickens in Southwestern Nigeria. Niger J Anim Prod. 2020; 47(1):24–32. https://doi.org/10.51791/njap.v47i1.175; 33. Ogunshola O, Morenikeji O, Chineke C. Modeling the growth curves of selected Fulani Ecotype chickens. Open Acc J Agri Res. 2020; 2(2):1–9. https://grfpublishers.com/article/view/MjIw/Modeling-the-Growth-Curves-of-Selected-Fulani-Ecotype-Chickens; 34. Andrade-Yucailla V, Alvarado-Chimbo C, Ramírez A, Viamonte M, Sánchez J, Toalombo P, et al. Morphometric and faneroptic characterization of the creole hen (Gallus Domesticus), in family transfers of the Santa Clara Canton, Pastaza. AICA. 2018; 12:1–18. https://aicarevista.jimdo.com/n%C3%BAmeros/vol%C3%BAmen-12-2018/; 35. Negassa D, Melesse A, Banerjee S. Phenotypic characterization of indigenous chicken populations in Southeastern Oromia Regional State of Ethiopia. Anim Genet. 2014; 55:101–113. https://doi.org/10.1017/S2078633614000319; https://revistamvz.unicordoba.edu.co/article/view/e2599

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